EP0993101B1 - Magnetplattenantriebsvorrichtung - Google Patents

Magnetplattenantriebsvorrichtung Download PDF

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Publication number
EP0993101B1
EP0993101B1 EP99307524A EP99307524A EP0993101B1 EP 0993101 B1 EP0993101 B1 EP 0993101B1 EP 99307524 A EP99307524 A EP 99307524A EP 99307524 A EP99307524 A EP 99307524A EP 0993101 B1 EP0993101 B1 EP 0993101B1
Authority
EP
European Patent Office
Prior art keywords
driving
magnetic
allocated
flat
magnetic disc
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
EP99307524A
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English (en)
French (fr)
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EP0993101A1 (de
Inventor
Mitsuo Kodama
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Victor Company of Japan Ltd
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Victor Company of Japan Ltd
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Filing date
Publication date
Application filed by Victor Company of Japan Ltd filed Critical Victor Company of Japan Ltd
Publication of EP0993101A1 publication Critical patent/EP0993101A1/de
Application granted granted Critical
Publication of EP0993101B1 publication Critical patent/EP0993101B1/de
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K29/00Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices
    • H02K29/06Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices with position sensing devices
    • H02K29/08Motors or generators having non-mechanical commutating devices, e.g. discharge tubes or semiconductor devices with position sensing devices using magnetic effect devices, e.g. Hall-plates, magneto-resistors
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S310/00Electrical generator or motor structure
    • Y10S310/03Hall effect generators and converters

Definitions

  • the present invention relates to a magnetic disc driving apparatus such as a driving device for a removable flexible disc, particularly, relates to a driving magnets and an allocation of coils in a spindle motor.
  • a floppy disc drive (FDD) is required of a smaller and thinner profile, and further required of high performance. Accordingly, a spindle motor utilized for an FDD is required of a smaller and thinner profile and also high performance.
  • Fig. 3 is a perspective view of a 3-phase flat spindle motor for an FDD of 1/2 inch thick.
  • the motor comprises the stator 103 composed of the metal-based printed circuit board 112 and the rotor 101, which is attached to the stator 103 with rotating freely.
  • Fig. 2 is a sectional view of the main part of the motor.
  • Fig. 1 is a plan view of the spindle motor shown in Fig. 3 with removing the rotor 101 and a bearing (not shown).
  • Table 1 the relation between a quantity of magnetic poles and a quantity of coils is shown in Table 1 if quantities of the magnetic poles and the coils are 4n and 3n respectively, where "n" is an integer of more than one.
  • a magnetization chart of the driving magnet and the allocation chart of coils are shown in Figs. 4(a) through 6(b), in case that the "n" is from 2 to 4.
  • Figs. 4(a), 5(a) and 6(a) respectively show the magnetization of the driving magnet.
  • Figs. 4(b), 5(b) and 6(b) respectively show the allocation of the coils.
  • Fig. 1 shows the example of 16 poles and 12 coils.
  • the stator 103 is composed of the metal-based printed circuit board 112. There provided a plurality of flat coils 105 and 107 on the metal-based printed circuit board 112 in a ring. Each coil is annulately allocated by the electrical angle of (4/3) ⁇ and is adjacent to each other. These flat coils 105 and 107 are formed a fan shape of a narrower inner circumference and a wider outer circumference. Electric current flows through the coils and the coils function as driving coils for the rotor 101.
  • the flat coils 105 and 107 are different from each other in a plain size. Each flat coil 107 of a smaller plain size is allocated between every 3 flat coils 105 of a larger plain size.
  • Fig. 1 12 flat coils in total composing of 9 flat coils 105 of the larger plain size and 3 flat coils 107 of the smaller plain size are allocated with covering 360 degrees.
  • a frequency generator (FG) pattern 104 is provided in adjacent to the outer circumference of the flat coils 105 and 107.
  • 3 magnetic sensors or Hall elements 106 for detecting position are respectively provided in between the flat coil 107 of the smaller plain size and the FG pattern 104.
  • the plain size of the flat coil 107 is smaller than that of the flat coil 105 by design in order to secure the space for arranging the Hall element 106, which is utilized for detecting a magnetic pole position of the rotor 101, on the metal-based printed circuit board 112 inside the FG pattern 104.
  • the flat coil 107 of the smaller plain size is allocated at equal intervals of 120 degrees to other 2 flat coils 107 respectively.
  • a magnetic recording and reproducing head (magnetic head) 108 is allocated at the area facing toward the flat coil 107 of the smaller plain size.
  • a driving ring magnet 102 is provided on the rotor 101 with facing toward the flat coils 105 and 107 on the stator 103.
  • An FG magnet 109 is provided on the rotor 101 with facing toward the FG pattern 104.
  • An FG signal for controlling rotation is generated by the FG pattern 104 provided on the stator 103 and the FG magnet 109 provided at the outermost circumference of the rotor 101.
  • the driving ring magnet 102 is magnetized in 16 poles radially.
  • a spindle 114 is fixed at the center of the rotor 101 and the spindle 114 is secured in the bearing (not shown) provided on the stator 103 so as to rotate freely.
  • the Hall elements 106 are allocated in an adjacent area of the FG pattern 104 in order to detect a magnetic pole position of the rotor 101, a space must be provided inside the FG pattern 104 so as to lead out wiring from the Hall element 106 to the outside of the FG pattern 104.
  • the FG pattern 104 is lacked to almost 2/3 of the total circumference in order to provide connecting patterns for the flat coils 105 and the Hall elements 106.
  • an output of the FG signal decreases and an accurate signal can not be obtained. Accordingly, it causes some problems such that rotation accuracy of the rotor 101 is deteriorated.
  • the flat coil 107 of the smaller size since the flat coil 107 of the smaller size is utilized, flux from a magnetic circuit can not be utilized sufficiently. It causes further subjects to be solved such that a torque and a torque coefficient, hereinafter called a Kt, are reduced.
  • the magnetic head 108 which records signals on or reproduces signals from a magnetic disc, approaches the upper side of the flat coil 107 of the smaller plain size closely, the magnetic head 108 happens to detect noise from the flat coil 107 by way of the rotor 101 and it may cause a data error.
  • neighboring flat coils generate magnetic field of different poles respectively, a part of fluxes directly cancels each other and generated torque is deteriorated, since utilization efficiency of fluxes is decreased.
  • an object of the present invention is to provide a magnetic disc driving apparatus such as a driving device for a removable flexible disc.
  • a magnetic disc driving apparatus comprising:
  • the magnetic disc driving apparatus further comprises a driving coil of 3-phase Y-connection or Y network composed of said 3m flat coils facing toward said driving magnetic pole, which is annulately allocated in a doughnut shaped area having an inner radius of R1 and an outer radius of R2 in coaxial with a center axis of rotation of said spindle, wherein said FG pattern is provided in the inner circumference area of said driving coil; and
  • Fig. 1 shows a FG (Frequency Generator) pattern and an allocation of coils according to the prior art.
  • Fig. 2 is a sectional view of the main part of the spindle motor according to the prior art.
  • Fig. 3 is a perspective view of a spindle motor for an FDD (Floppy Disc Drive) according to the prior art.
  • Fig. 4(a) shows magnetization of an 8-pole ring magnet according to the prior art.
  • Fig. 4(b) shows a coil allocation of 6 coils according to the prior art.
  • Fig. 5(a) shows magnetization of a 12-pole ring magnet according to the prior art.
  • Fig. 5(b) shows a coil allocation of 9 coils according to the prior art.
  • Fig. 6(a) shows magnetization of a 16-pole ring magnet according to the prior art.
  • Fig. 6(b) shows a coil allocation of 12 coils according to the prior art.
  • Fig. 7 is a plan view of a stator showing an FG (Frequency Generator) pattern and an allocation of coils according to an embodiment of the present invention.
  • FG Frequency Generator
  • Fig. 8 is a sectional view of the main part of the spindle motor according to the embodiment of the present invention.
  • Fig. 9 is a perspective view of a coil of a flat rectangular wire according to the embodiment of the present invention.
  • Fig. 10 is a sectional view of the coil shown in Fig. 9.
  • Fig. 11 is a perspective sectional view of the flat rectangular wire, which is insulated on one side, according to the embodiment of the present invention.
  • Fig. 12 is a perspective sectional view of the flat rectangular wire, which is insulated on both sides, according to the embodiment of the present invention.
  • Fig. 13(a) shows magnetization of a 12-pole ring magnet according to a variation of the embodiment of the present invention.
  • Fig. 13(b) shows a coil allocation of 6 coils according to a variation of the embodiment of the present invention.
  • Fig. 14(a) shows magnetization of a 16-pole ring magnet according to the embodiment of the present invention.
  • Fig. 14(b) shows a coil allocation of 9 coils according to the embodiment of the present invention.
  • Fig. 15(a) shows magnetization of a 20-pole ring magnet according to another variation of the embodiment of the present invention.
  • Fig. 15(b) shows a coil allocation of 9 coils according to another variation of the embodiment of the present invention.
  • Fig. 16 shows a FDD device comprising a spindle motor and a magnetic head according to the embodiment of the present invention.
  • Fig. 16 is an internal construction of an FDD (Floppy Disc Drive) device 50 showing a relative position of a spindle motor 15 and a magnetic head 8.
  • the magnetic head 8 records signals on a magnetic disc (not shown) or reproduces signals recorded on a magnetic disc (not shown) while the magnetic head 8 moves linearly toward a spindle 14 of the spindle motor 15 with being driven by a stepping motor 60.
  • the spindle motor 15 comprises a rotor 1, a stator 3 and the spindle 14.
  • Fig. 8 is a sectional view of the main part of the spindle motor 15 according to an embodiment of the present invention.
  • the spindle motor 15 comprises a rotor 1, a stator 3 and a spindle 14.
  • the rotor 1 is composed of a driving ring magnet 2 and an FG (Frequency Generator) magnet 9.
  • the driving ring magnet 2 provided on the rotor 1 with facing toward the flat coil 5 is magnetized radially in 16 poles as shown in Fig. 14(a).
  • the FG magnet 9 is magnetized in 96 poles, that is, 48 poles in pair.
  • the driving ring magnet 2 is allocated in a position facing toward the flat coil 5 and the FG magnet 9 is allocated in another position facing toward the FG pattern 4 respectively.
  • the stator 3 is composed of an FG pattern 4 and a flat coil 5, which are stacked on a metal-based printed circuit board 12.
  • the driving ring magnet 2 provided on the rotor 1 with facing toward the flat coil 5 is magnetized radially in 16 poles as shown in Fig. 14(a).
  • Fig. 7 is a plan view of the stator 3 with removing the rotor 1 and the spindle 14 from the spindle motor 15.
  • a rotation driving system of the spindle motor 15 is a driving system composed of 3 phases, 16 poles, 9 flat coils and one magnetic sensor.
  • the stator 3 comprises the FG pattern 4, 9 flat coils 5a through 5i, a Hall element 6 and an area 20 for a magnetic sensor, and they are allocated on the metal-based printed circuit board 12.
  • the stator 3 is composed of the metal-based printed circuit board 12 of an iron system as a stator yoke.
  • the FG pattern 4 for 48-pulse FG is formed in an inner circumference area of the stator 3 and is provided with a canceling pattern 19 and a pair of lead wire 23 of the FG pattern 4.
  • An angle of the lead wire 23 is arranged to be 3.75° in accordance with the mechanical angle of one magnetic pole of the FG magnet 9 as mentioned above.
  • the canceling pattern 19 is allocated in a pitch of 22.5° being apart from the lead wire 23 and extended to an outside area of the outer circumference of flat coils.
  • the lead wire 23 and the canceling pattern 19 are affected by a same amount of fluxes from the driving ring magnet 2.
  • the first flat coil 5a through the ninth flat coil 5i are allocated in adjacent to each other with surrounding the FG pattern 4. They are annulately allocated in a doughnut shaped area having an inner radius of R1 and an outer radius of R2.
  • the reference number 5 hereinafter represents all the flat coils for easier explanation except specifying a flat coil such as the first flat coil 5a or the ninth flat coil 5i.
  • Each flat coil 5 is formed in a fan shape such as a smaller inner circumference in comparison with an outer circumference as shown in Fig. 14(b) and its width is 22.5° . Neighboring flat coils 5 are allocated in 37.5° adjacent to each other.
  • one spacing area is provided in between the first flat coil 5a and the ninth flat coil 5i for allocating a Hall element 6 as an area 20 for a magnetic sensor.
  • a flat rectangular wire which is a rectangular shape in cross section
  • Figs. 9 through 12 depict details of the flat coil 5.
  • Fig. 9 is a perspective view of the flat coil 5.
  • the flat coil 5 comprises an electrode 21 of start of winding and another electrode 22 of end of winding.
  • Fig. 10 is a sectional view of the flat coil 5 shown in Fig. 9.
  • Fig. 12 shows a sectional configuration of a flat rectangular wire.
  • a copper wire 16 is a rectangular shape in cross section and coated with an insulation layer 17 and an adhesive layer 18.
  • Fig. 11 is a sectional view of a flat rectangular wire with being insulated on one side of the copper wire 16.
  • the copper wire 16 is coated with an insulation layer 17 and an adhesive layer 18 on one side of the copper wire 16.
  • a flat coil formed by such a flat rectangular wire insulated on one side can produce a motor of high efficiency, since a dimension of the flat coil can be reduced totally.
  • a pitch between the first flat coil 5a and the ninth flat coil 5i is (8/3) ⁇ of the electrical angle and 60° of the mechanical angle since the area 20 for a magnetic sensor is provided in between them for the Hall element 6.
  • a spacing area of 22.5° of the mechanical angle is presented in between the first flat coil 5a and the ninth flat coil 5i.
  • a quantity of magnetic poles is 4n and a quantity of coils is 3n, where "n" is an integer of more than one.
  • a quantity of magnetic poles is 4n such as 16 poles and a quantity of coils is 3m such as 9 coils, where "n" is an integer of more than 3 and "m” is an integer of more than 2.
  • the magnetization of the 16 magnetic poles and the allocation of 9 coils are shown in Figs. 14(a) and 14(b) respectively.
  • a case of 12 magnetic poles and 6 coils are shown in Figs. 13(a) and 13(b)
  • another case of 20 magnetic poles and 9 coils are shown in Figs. 15(a) and 15(b) respectively as variations.
  • a spindle motor is provided with one spacing area among a plurality of flat coils annulately allocated in a doughnut shaped area. Since a magnetic sensor is allocated in the spacing area, it is not necessary to allocate a small flat coil in diameter so that a number of flat coils can be decreased and manpower and a manufacturing cost for assembling a spindle motor can be reduced. Further, since the spacing area among the flat coils is allocated in a moving area of a magnetic head, the magnetic head is hardly affected by leaked fluxes from the flat coils. Accordingly an incidence of data error is reduced in a FDD device.
  • a starting torque and a torque constant (Kt) are improved because a flat coil can be allocated in an outer circumference area and a dimension of the flat coil can sufficiently be enlarged.
  • an FG pattern can be formed inside an inner circumference area of flat coils, the FG pattern is not obstructed by lead wires of a magnetic sensor and can be formed all along the circumference inside the inner circumference of the flat coils or driving coils so that a rotation accuracy of the motor is improved.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Brushless Motors (AREA)

Claims (5)

  1. Magnetplattenantriebsvorrichtung mit:
    einem Substrat (12), welches einen Stator (3) darstellt;
    einer Spindel (14), welche an dem Substrat (12) so angebracht ist, daß sie sich frei drehen kann;
    einem FG (Frequenzgenerator)-Muster (4), welches ringförmig auf dem Substrat (12) gebildet ist und die Spindel (14) umgibt;
    3m flachen Spulen (5: 5a bis 5i), die auf dem Substrat (12) über den Umfang in Schritten von (5/3) π des elektrischen Winkels verteilt sind, wobei m eine ganze Zahl größer 2 ist;
    einem Rotor (1) als Antrieb der Magnetplatte, wobei der Rotor (1) an der Spindel (14) angebracht ist;
    einem Antriebsringmagnet (2) mit 4n magnetischen Antriebspolen, die an dem Rotor (1) angebracht sind, und der den flachen Spulen (5) entlang des Umfangs gegenüberliegt, wobei n eine ganze Zahl größer als 3 ist; und
    einem Magnetkopf (8), der sich innerhalb eines vorherbestimmten Bewegungsbereichs befindet und sich der Magnetplatte annähert,
    wobei die Magnetplattenantriebsvorrichtung außerdem dadurch gekennzeichnet ist, daß ein magnetischer Sensor (6)in einem maximalen Lückenbereich angebracht ist, welcher sich zwischen den 3m flachen Spulen (5) befindet, die über den Umfang verteilt sind.
  2. Magnetplattenantriebsvorrichtung nach Anspruch 1, wobei der maximale Lückenbereich in einem Bereich untergebracht ist, welcher mit dem Bewegungsbereichs des Magnetkopfs (8) übereinstimmt.
  3. Magnetplattenantriebsvorrichtung nach Anspruch 1, wobei die Magnetplattenantriebsvorrichtung des weiteren aufweist:
    eine Antriebsspule (5) mit einer 3-Phasen Y-Verbindung oder Y-Netzwerk, die aus den 3m flachen Spulen (5) besteht, und die dem magnetischen Antriebspol zugewandt ist, welcher ringförmig in einem toroidförmigen Bereich mit einem Innenradius R1 und einen Außenradius R2 koaxial zu einer zentralen Rotationsachse der Spindel (14) angebracht ist, wobei das FG-Muster (4) im inneren Umfangsbereich der Antriebsspule (5) angebracht ist; und
    Antriebsschaltungen, um die Antriebsspule (5) umzuschalten und, und um den Antriebsstrom zu veranlassen, so durch die Antriebsspule zu fließen, daß ein drehendes Magnetfeld erzeugt wird;
    wobei die Magnetplattenantriebsvorrichtung den Rotor (1) veranlaßt, eine drehende Antriebskraft durch die Wechselwirkung zwischen dem drehenden Magnetfeld und dem magnetischen Antriebspol zu erzeugen, und
    wobei die Magnetplattenantriebsvorrichtung außerdem dadurch gekennzeichnet ist, daß die flachen Spulen (5) so angebracht sind, daß ein magnetisches Feld mit der gleichen Polarität von benachbarten, flachen Spulen (5) für den Fall eines fließenden Antriebsstroms während beliebiger 2 von 3 Phasen erzeugt wird, und dadurch, daß die flachen Spulen (5) auf solche Weise angebracht sind, daß die radialen Achsen der flachen Spulen zur Außenseite des maximalen Lückenbereichs, welcher sich von 10 bis 60 Grad bezogen auf die Richtung des Bewegungsbereichs des magnetischen Kopfes (8) erstreckt, weisen.
  4. Magnetplattenantriebsvorrichtung nach Anspruch 1, wobei die flachen Spulen (5) aus einem flachen, rechtwinkligen Draht hergestellt sind.
  5. Magnetplattenantriebsvorrichtung nach Anspruch 3, wobei die Antriebsspule (5) aus einem flachen, rechtwinkligen Draht hergestellt ist.
EP99307524A 1998-09-28 1999-09-23 Magnetplattenantriebsvorrichtung Expired - Lifetime EP0993101B1 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP27287698 1998-09-28
JP27287698 1998-09-28

Publications (2)

Publication Number Publication Date
EP0993101A1 EP0993101A1 (de) 2000-04-12
EP0993101B1 true EP0993101B1 (de) 2002-12-11

Family

ID=17520003

Family Applications (1)

Application Number Title Priority Date Filing Date
EP99307524A Expired - Lifetime EP0993101B1 (de) 1998-09-28 1999-09-23 Magnetplattenantriebsvorrichtung

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US (1) US6144126A (de)
EP (1) EP0993101B1 (de)
DE (1) DE69904422T2 (de)

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6365995B1 (en) * 1998-11-20 2002-04-02 Matsushita Electric Industrial Co., Ltd. Brushless motor and its assembly method
JP3609645B2 (ja) * 1999-03-11 2005-01-12 株式会社東海理化電機製作所 回転検出センサ
US6559565B2 (en) * 2001-03-02 2003-05-06 Victor Company Of Japan, Ltd. Motor apparatus
KR200268109Y1 (ko) * 2001-12-06 2002-03-15 김정훈 편평형 무정류자 진동모터
JP4478537B2 (ja) * 2004-09-03 2010-06-09 日本ビクター株式会社 ブラシレスモータ
US7586232B2 (en) * 2005-04-26 2009-09-08 Industrial Design Laboratories, Inc Flat radially interacting electric drive and a method of the manufacturing the same
US7518823B2 (en) * 2005-06-09 2009-04-14 Hitachi Global Storage Technologies Netherlands B.V. Spindle motor winding for miniature hard disk drive
US7608965B2 (en) * 2005-09-01 2009-10-27 Wisconsin Alumni Research Foundation Field controlled axial flux permanent magnet electrical machine
JP5101309B2 (ja) * 2008-01-15 2012-12-19 三菱重工業株式会社 モータの位置検出方法およびモータの駆動装置並びにポンプ

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Publication number Priority date Publication date Assignee Title
JPS5775554A (en) * 1980-10-28 1982-05-12 Nippon Telegr & Teleph Corp <Ntt> Flat motor
US4508998A (en) * 1981-02-09 1985-04-02 David H. Rush Brushless disc-type DC motor or generator
JPS5812566A (ja) * 1981-07-14 1983-01-24 Yoshiteru Takahashi 電機子巻線を7個以上有するブラシレスモ−タ
US4633149A (en) * 1985-09-10 1986-12-30 Buehler Products, Inc. Brushless DC motor
US4841393A (en) * 1987-11-02 1989-06-20 Seagate Technology, Inc. Spindle motor for a disc drive
JPH0295192A (ja) * 1988-09-29 1990-04-05 Sony Corp ホールモータの回転制御回路
US5124604A (en) * 1989-06-15 1992-06-23 Areal Technology Corp. Disk drive motor
US5124863A (en) * 1989-06-27 1992-06-23 Canon Denshi Kabushiki Kaisha Disk drive device having reduced thickness
JPH0433552A (ja) * 1990-05-29 1992-02-04 Matsushita Electric Ind Co Ltd 周波数発電機付モータ
WO1993001644A1 (en) * 1991-07-11 1993-01-21 Secoh Giken, Inc. Flat coreless dc motor
JPH0847232A (ja) * 1994-08-03 1996-02-16 Omron Corp ブラシレスモータ用ステータ

Also Published As

Publication number Publication date
DE69904422T2 (de) 2003-12-04
DE69904422D1 (de) 2003-01-23
EP0993101A1 (de) 2000-04-12
US6144126A (en) 2000-11-07

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